[Technical Field]
[0001] This application claims priority to and the benefit of Korean Patent Application
No.
10-2017-0179588 filed in the Korean Intellectual Property Office on December 26, 2017, the entire
contents of which are incorporated herein by reference.
[0002] The present specification relates to a method for producing a zinc ferrite catalyst
and a zinc ferrite catalyst produced thereby.
[Background Art]
[0003] 1,3-butadiene is an intermediate of petroleum chemical products, and the demand and
value for the same have gradually increased. The 1,3-butadiene has been produced by
using the naphtha cracking process, the direct dehydrogenation reaction of butene,
the oxidative dehydrogenation reaction of butene, and the like.
[0004] However, since the naphtha cracking process consumes a lot of energy due to high
reaction temperature, and is not a single process for producing only 1,3-butadiene,
there is a problem in that other fundamental oil components in addition to 1,3-butadiene
are produced in excess. Further, the direct dehydrogenation reaction of n-butene is
thermodynamically adverse and requires high temperature and low pressure conditions
for producing 1,3-butadiene at high yield as an endothermic reaction, and thus is
not suitable as a commercialization process for producing 1,3-butadiene.
[0005] Meanwhile, the oxidative dehydrogenation reaction of butene is a reaction in which
butene and oxygen react with each other in the presence of a metal oxide catalyst
to produce 1,3-butadiene and water, and has a thermodynamically very favorable advantage
because stable water is produced. Further, since the oxidative dehydrogenation reaction
of butene is an exothermic reaction unlike the direct dehydrogenation reaction of
butene, 1,3-butadiene may be obtained at high yield even at low reaction temperature
as compared to the direct dehydrogenation reaction, and the oxidative dehydrogenation
reaction of butene may become an effective single production process capable of satisfying
the demand for 1,3-butadiene because an additional heat supply is not required.
[0006] The metal oxide catalyst is generally synthesized by a precipitation method, and
the one-time amount of metal oxide catalyst produced is small due to technological
and spatial limitations, so that the catalyst is produced by repeating the same process
several times in order to satisfy a target amount. The catalysts thus produced after
several processes may have different reactivity with the reactant depending on the
production order, and the difference in reactivity of such a catalyst is directly
related to the yield of the product (butadiene), so that studies to reduce the difference
in reactivity of the catalyst have been continuously carried out.
[Detailed Description of Invention]
[Technical Problem]
[0007] The present specification provides a method for producing a zinc ferrite catalyst.
[Technical Solution]
[0008] An exemplary embodiment of the present specification provides a method for producing
a zinc ferrite catalyst, the method comprising:
preparing a zinc precursor solution;
preparing a ferrite precursor solution;
obtaining a first precipitate by bringing the zinc precursor solution into contact
with an aqueous basic solution;
obtaining a second precipitate by adding the ferrite precursor solution to the first
precipitate; and
drying and firing the second precipitate after filtering the second precipitate.
[0009] An exemplary embodiment of the present specification provides a zinc ferrite catalyst
produced by the above-described method for producing a zinc ferrite catalyst.
[0010] Further, an exemplary embodiment of the present specification provides a zinc ferrite
catalyst in which a molar ratio (ferrite/zinc (Fe/Zn
a)) of ferrite to zinc is 1 to 2.5.
[0011] In addition, an exemplary embodiment of the present specification provides a method
for producing butadiene, the method comprising:
preparing the above-described zinc ferrite catalyst; and
producing butadiene by using the zinc ferrite catalyst in an oxidative dehydrogenation
reaction of butene.
[Advantageous Effects]
[0012] In a zinc ferrite catalyst produced by a method for producing the zinc ferrite catalyst
according to an exemplary embodiment of the present specification, the α-Fe
2O
3 phase is decreased and the activity of the catalyst is increased.
[0013] Accordingly, 1,3-butadiene may be obtained at high yield as compared to a zinc ferrite
catalyst in the related art, which is used in the oxidative dehydrogenation of butene.
[Brief Description of Drawings]
[0014]
FIG. 1 is a process diagram for performing a method for producing a zinc ferrite catalyst
according to an exemplary embodiment of the present specification.
FIG. 2 is a process diagram for performing a method for producing a zinc ferrite catalyst
according to a coprecipitation method in the related art.
FIG. 3 is a view illustrating results of measuring the intensity of the zinc ferrite
catalysts produced according to Example 1 and Comparative Examples 1 and 2 of the
present specification.
FIG. 4 is a view illustrating results of measuring the change in temperature over
time of the zinc ferrite catalysts produced according to Example 2 and Comparative
Examples 3 to 5 of the present specification.
FIG. 5 is a view illustrating results of measuring the intensity of the zinc ferrite
catalysts produced according to Example 2 and Comparative Examples 3 to 5 of the present
specification.
[Best Mode]
[0015] Hereinafter, the present specification will be described in more detail.
[0016] In the present specification, the 'yield (%)' is defined as a value obtained by dividing
the weight of 1,3-butadiene, which is a product of an oxidative dehydrogenation reaction,
by the weight of butene which is a raw material. For example, the yield may be represented
by the following equation.

[0017] In the present specification, the 'conversion rate (%)' refers to a rate at which
a reactant is converted into a product, and for example, the conversion rate of butene
may be defined by the following equation.

In the present specification, the 'selectivity (%)' is defined as a value obtained
by dividing the change amount of butadiene (BD) by the change amount of butene (BE).
For example, the selectivity may be represented by the following equation.

[0018] An exemplary embodiment of the present specification provides a method for producing
a zinc ferrite catalyst, the method comprising: preparing a zinc precursor solution;
preparing a ferrite precursor solution; obtaining a first precipitate by bringing
the zinc precursor solution into contact with an aqueous basic solution; obtaining
a second precipitate by adding the ferrite precursor solution to the first precipitate;
and drying and firing the second precipitate after filtering the second precipitate.
[0019] It is known that the activity of a ferrite-based catalyst having a spinel structure
(AFe
2O
4) is good as a catalyst for a process of producing 1,3-butadiene through the oxidative
dehydrogenation reaction of butene.
[0020] Meanwhile, it is known that a ferrite-based catalyst exhibits a result that is better
than a bismuth-molybdenum catalyst (Mo-Bi catalyst) in terms of reactivity with 2-butene,
particularly, trans-2-butene. Accordingly, even though the Mo-Bi catalyst is applied
to the oxidative dehydrogenation reaction of 2-butene, an effect which is the same
as that in the present invention, that is, a result such as the conversion rate of
butene or selectivity of butadiene is not obtained.
[0021] In this case, a ZnFe
2O
4 catalyst used in the oxidative dehydrogenation reaction of butene is generally produced
by a coprecipitation method. In the coprecipitation, the ZnFe
2O
4 catalyst is produced by subjecting the raw materials to precipitation, stirring,
aging, washing, drying, and firing processes, and a step in which zinc (Zn) and ferrite
(Fe) are homogeneously precipitated is very important.
[0022] There is a problem in that in the process of synthesizing a zinc ferrite catalyst
using the coprecipitation method in the related art, an α-Fe
2O
3 phase is formed. The α-Fe
2O
3 phase exhibits a low butadiene selectivity in the oxidative dehydrogenation reaction
of butene, whereas the ZnFe
2O
4 phase exhibits high butadiene selectivity.
[0023] Accordingly, as a result of investigating a synthesis method capable of controlling
production of the α-Fe
2O
3 phase in order to improve the butadiene selectivity, the present inventors found
that unlike a method of simultaneously dissolving and precipitating a zinc precursor
and a ferrite precursor in a process of synthesizing a zinc ferrite catalyst using
an existing coprecipitation method, when the zinc ferrite catalyst is produced by
a process of synthesizing the catalyst by first precipitating the zinc precursor than
the ferrite precursor, the α-Fe
2O
3 phase is reduced and the activity of the catalyst is increased, and as a result,
1,3-butadiene could be ultimately obtained at high yield by increasing the selectivity
of butadiene in the oxidative dehydrogenation reaction of butene.
[0024] According to an exemplary embodiment of the present specification, the preparing
of the zinc precursor solution may dissolve a zinc precursor in an amount of 0.1 part
by weight to 99 parts by weight based on 100 parts by weight of deionized water (DI
water) in the deionized water. Specifically, the amount may be 1 part by weight to
99 parts by weight based on 100 parts by weight of the deionized water. Specifically,
it is preferred that the amount is 1 part by weight to 97 parts by weight based on
100 parts by weight of the deionized water.
[0025] When the content of the zinc precursor satisfies the above range, a zinc ferrite
catalyst is easily synthesized according to the precipitation order.
[0026] According to an exemplary embodiment of the present specification, the preparing
of the ferrite precursor solution may dissolve a ferrite precursor in an amount of
1 part by weight to 80 parts by weight based on 100 parts by weight of deionized water
(DI water) in the deionized water. Specifically, the amount may be 3 parts by weight
to 80 parts by weight based on 100 parts by weight of the deionized water. Specifically,
it is preferred that the amount is 5 parts by weight to 70 parts by weight based on
100 parts by weight of the deionized water.
[0027] When the content of the ferrite precursor satisfies the above range, a zinc ferrite
catalyst is easily synthesized according to the precipitation order.
[0028] According to an exemplary embodiment of the present specification, the zinc precursor
and the ferrite precursor may be each independently one or more selected from the
group consisting of nitrate, ammonium salt, sulfate, and chloride, or a hydrate thereof.
Specifically, it is preferred that the zinc precursor and the ferrite precursor are
each independently nitrate or chloride, or a hydrate thereof.
[0029] According to an exemplary embodiment of the present specification, the zinc precursor
may be zinc chloride (ZnCl
2). In this case, the formation of the zinc ferrite catalyst is excellent.
[0030] According to an exemplary embodiment of the present specification, the ferrite precursor
may be ferric chloride hydrate (FeCl
3·6H
2O). In this case, the formation of the zinc ferrite catalyst is excellent.
[0031] According to an exemplary embodiment of the present specification, the deionized
water (DI water) may be at more than 0°C and 40°C or less. Preferably, DI water may
be at more than 0°C and 30°C or less. More preferably, the DI water may be at more
than 5°C and 25°C or less. When the temperature of the deionized water satisfies the
above range, the selectivity and yield of butadiene according to the oxidative dehydrogenation
reaction may be ultimately improved by increasing the amount of catalyst produced
by the precipitation and adjusting the content of the active catalyst.
[0032] According to an exemplary embodiment of the present specification, a pH of the aqueous
basic solution may be 7 to 10. Preferably, the pH may be 7.5 to 9. When the pH satisfies
the above range, there is an effect of stably producing the zinc ferrite catalyst.
[0033] According to an exemplary embodiment of the present specification, the aqueous basic
solution may be one or more selected from the group consisting of potassium hydroxide,
ammonium carbonate, ammonium bicarbonate, an aqueous sodium hydroxide solution, an
aqueous sodium carbonate solution, and ammonium water. Preferably, the aqueous basic
solution may be ammonia water. In this case, in the production process of synthesizing
a zinc ferrite catalyst by varying the precipitation order, there is an effect that
facilitates precipitation, and thus makes the formation of catalyst particles excellent.
[0034] According to an exemplary embodiment of the present specification, a concentration
of the aqueous basic solution may be 5 wt% to 20 wt%. Preferably, the concentration
may be 5 wt% to 10 wt%.
[0035] According to an exemplary embodiment of the present specification, the filtering
of the second precipitate is not particularly limited as long as the method is a filtration
method typically used in the art. For example, the method may be vacuum filtration.
Specifically, the method may be a method of filtering the second precipitate by using
a vacuum pump to reduce pressure, and in this case, there is an effect that separates
the catalyst from washing and moisture.
[0036] According to an exemplary embodiment of the present specification, the drying of
the second precipitate is not particularly limited as long as the method is a drying
method typically used in the art. For example, a dryer may be used, and an oven may
be used.
[0037] According to an exemplary embodiment of the present specification, the drying of
the second precipitate may be performed in an oven at 70°C to 100°C. Preferably, the
second precipitate may be dried in an oven at 80°C to 100°C.
[0038] According to an exemplary embodiment of the present specification, the firing of
the second precipitate may increase temperature at 80°C and a rate of 1°C/min and
maintain the temperature at 600°C to 800°C for 5 hours to 10 hours. In the firing
of the second precipitate, the second precipitate may be fired specifically at 600°C
to 700°c, and more specifically at 600°C to 650°C. In the firing of the second precipitate,
the second precipitate may be fired specifically for 5 hours to 8 hours, and more
specifically for 5 hours to 6 hours.
[0039] According to the above temperature range, the crystal size of the ZnFe
2O
4 structure of the catalyst is controlled, and the size of the crystals tends to increase
as the temperature is increased. In the dehydrogenation reaction of the present application,
the adsorption and desorption of oxygen are very important, and the higher the crystallinity
is, the less oxygen is desorbed, so that the reactivity may be decreased. For example,
a commercially available ZnFe
2O
4 exhibits very good crystallinity, but the activity is very low in the present reaction.
For this reason, it is very important to produce a catalyst having appropriate crystallinity,
and it can be said that the firing temperature is essential for the catalyst.
[0040] It is generally known that the above time range has a tendency similar to temperature,
but the time range may be less effective than increasing the temperature, and if the
time is maintained too long, the production time is too long when several tons of
catalyst is later produced in the commercialization step time, so that the firing
time is generally adjusted to 6 hours or so in the laboratory setting.
[0041] Accordingly, the firing of the second precipitate according to an exemplary embodiment
of the present application may control the crystal size of the zinc ferrite catalyst
by increasing temperature at 80°C and a rate of 1°C/min and maintaining the temperature
at 600°C to 800°C for 5 hours to 10 hours. When the temperature and the time are out
of the above temperature and time ranges, if the temperature is much less than 600°C,
crystals are weakly formed, so that the stability structurally deteriorates. In contrast,
when the temperature is more than 800°C, the crystallinity is so high that a less
active catalyst may be rather produced. In conclusion, appropriate crystallinity is
important in consideration of characteristics and reaction characteristics of the
feed, and may be controlled by temperature and time in the firing of the second precipitate.
[0042] The firing method may be a heat treatment method typically used in the art.
[0043] Further, an exemplary embodiment of the present specification provides a zinc ferrite
catalyst produced by the above-described method for producing a zinc ferrite catalyst.
[0044] According to an exemplary embodiment of the present specification, in the zinc ferrite
catalyst produced by the above-described method for producing a zinc ferrite catalyst,
a molar ratio (ferrite/zinc (Fe/Zn
a)) of ferrite to zinc may be 1 to 2.5. Preferably, the molar ratio may be 2 to 2.5.
More preferably, the molar ratio may be 2 to 2.4. When the molar ratio of ferrite
to zinc is within the above range, the molar ratio is helpful in increasing the crystal
structure and activity of the zinc ferrite catalyst and the zinc ferrite phase is
excellently formed by adjusting the α-Fe
2O
3 phase within a certain range, so that there is an effect in that the selectivity
and yield of butadiene according to the oxidative dehydrogenation reaction are excellent.
[0045] In the present specification, the molar ratio (ferrite/zinc (Fe/Zn
a)) of ferrite to zinc is a value measured to see to what degree the ratio of Fe/Zn
on the surface of an actual catalyst measured through an energy dispersive X-ray spectrometer
(EDS) characteristic analysis is dispersed.
[0046] Another exemplary embodiment of the present specification provides a zinc ferrite
catalyst in which a molar ratio (ferrite/zinc (Fe/Zn
a)) of ferrite to zinc is 1 to 2.5.
[0047] According to an exemplary embodiment of the present specification, the molar ratio
(Fe/Zn) of ferrite to zinc of the zinc ferrite catalyst may be 1 to 2.5, preferably
2 to 2.5. More preferably, the molar ratio may be 2 to 2.4. When the molar ratio of
ferrite to zinc satisfies the above range, the zinc ferrite phase is predominantly
formed by adjusting the α-Fe
2O
3 phase within a certain range, so that there is an effect in that the selectivity
and yield of butadiene according to the oxidative dehydrogenation reaction are excellent.
[0048] Further, an exemplary embodiment of the present specification provides a method for
producing butadiene, the method comprising: preparing the above-described zinc ferrite
catalyst; and producing butadiene by using the zinc ferrite catalyst in an oxidative
dehydrogenation reaction of butene.
[0049] According to an exemplary embodiment of the present specification, the producing
of the butadiene may allow a raw material comprising C4 oil components, steam, oxygen
(O
2), and nitrogen (N
2) to react under the conditions of a reaction temperature of 400°C to 600°C, a pressure
condition of 0.1 bar to 10 bar, and a gas hourly space velocity (GHSV) of 200 h
-1 to 400 h
-1.
[0050] The C4 oil component may mean C4 raffinate-1,2,3 remaining by separating useful compounds
from a C4 mixture produced by a naphtha cracking process, and may mean C4 classes
which may be obtained through ethylene dimerization.
[0051] According to an exemplary embodiment of the present specification, the C4 oil component
may be one or a mixture of two or more selected from the group consisting of n-butane,
trans-2-butene, cis-2-butene, and 1-butene.
[0052] According to an exemplary embodiment of the present specification, the steam or nitrogen
(N
2) is a diluted gas introduced for the purpose of reducing the explosion danger of
the reactant, simultaneously preventing coking of the catalyst, removing the reaction
heat, and the like in the oxidative dehydrogenation reaction.
[0053] According to an exemplary embodiment of the present specification, the oxygen (O
2) is an oxidant and reacts with C4 oil components to cause a dehydrogenation reaction.
[0054] According to an exemplary embodiment of the present specification, the oxidative
dehydrogenation reaction may proceed according to the following Reaction Formula 1
or Reaction Formula 2.
[Reaction Formula 1] C
4H
8 + 1/2O
2 → C
4H
6 + H
2O
[Reaction Formula 2] C
4H
10 + O
2 → C
4H
6 + 2H
2O
[0055] Hydrogen of butane or butene is removed from the oxidative dehydrogenation reaction,
and as a result, butadiene is produced. Meanwhile, the oxidative dehydrogenation reaction
may produce a side reaction product comprising carbon monoxide (CO), carbon dioxide
(CO
2), or the like except for the main reaction such as Reaction Formula 1 or 2. The oxidative
dehydrogenation reaction may comprise a process in which the side reaction product
is separated so as not to be continuously accumulated in the process, and is released
out of the system.
[0056] According to an exemplary embodiment of the present specification, in the method
for producing butadiene, the conversion rate of butene may be 72% or more, preferably
72.5% or more, and more preferably 79% or more.
[0057] According to an exemplary embodiment of the present specification, in the method
for producing butadiene, the selectivity of butadiene may be 85% or more, preferably
85.8% or more, and more preferably 87% or more.
[0058] FIG. 1 is an exemplary process diagram for performing a method for producing a zinc
ferrite catalyst according to an exemplary embodiment of the present specification.
[0059] According to FIG. 1, in a coprecipitation method of a zinc ferrite catalyst, the
zinc ferrite catalyst may be synthesized by adjusting the precipitation order of the
zinc precursor and the ferrite precursor. In particular, in the case where the zinc
ferrite catalyst is synthesized by first precipitaing the zinc precursor than the
ferrite precursor, the α-Fe
2O
3 phase is decreased and the activity of the catalyst is increased, unlike the existing
method of simultaneously dissolving and coprecipitating the zinc precursor and the
ferrite precursor.
[0060] As described above, according to an exemplary embodiment of the present specification,
during the process of producing an advantageous zinc ferrite catalyst as a catalyst
for the oxidative dehydrogenation reaction of butene, when the zinc ferrite catalyst
is synthesized by varying the precipitation order of the zinc precursor and the ferrite
precursor, butadiene may be ultimately produced at high yield by increasing the conversion
rate of butene and the selectivity of butadiene.
[Mode for Invention]
[0061] Hereinafter, the present specification will be described in detail with reference
to Examples for specifically describing the present specification. However, the Examples
according to the present specification may be modified in various forms, and it is
not interpreted that the scope of the present specification is limited to the Examples
described below in detail. The Examples of the present specification are provided
to more completely explain the present specification to a person with ordinary skill
in the art.
<Example 1>
[0062] A Fe precursor solution was prepared by dissolving 47.667 g of FeCl
3·6H
2O as a Fe precursor in 710.2 g of deionized water (DI water). A Zn precursor solution
was prepared by dissolving 2.019 g of ZnCl
3 as a Zn precursor in 125.3 g of deionized water (DI water).
[0063] The pH was adjusted to 9 by simultaneously dropping the Zn precursor solution and
9 wt% of ammonia water in 8,500 g of DI water at 15°C for precipitation using a circulator,
and subsequently, the Fe precursor solution and 9 wt% of ammonia water were simultaneously
dropped in DI water in which the Zn precursor solution was precipitated for precipitation.
[0064] A formed catalyst compound was subjected to a filtering process, and then dried in
an oven at 90°C, and a zinc ferrite catalyst was obtained by performing firing (calcination)
at an air atmosphere (1 L/min). For the firing, the temperature was increased at 80°C
and 1°C/min, and was maintained at 650°C for 6 hours.
<Example 2>
[0065] A Fe precursor solution was prepared by dissolving 1,132.219 g of FeCl
3·6H
2O as a Fe precursor in 1,700g of deionized water (DI water). A Zn precursor solution
was prepared by dissolving 288.456 g of ZnCl
3 as a Zn precursor in 300 g of DI water.
[0066] The pH was adjusted to 7.5 by simultaneously dropping the Zn precursor solution and
9 wt% of ammonia water in 2,000 g of DI water at 15°C for precipitation using a circulator,
and subsequently, the Fe precursor solution and ammonia water were together dropped
in DI water in which the Zn precursor solution was precipitated for precipitation.
[0067] A formed catalyst compound was subjected to a filtering process, and then dried in
an oven at 90°C, and a zinc ferrite catalyst was obtained by performing firing (calcination)
at an air atmosphere (1 L/min). For the firing, the temperature was increased at 80°C
and 1°C/min, and was maintained at 650°C for 6 hours.
<Comparative Example 1>
[0068] A zinc ferrite catalyst was synthesized in the same manner as in Example 1, except
that in Example 1, the pH was adjusted to 9 by simultaneously dropping the Fe precursor
solution and ammonia water in 8,500 g of deionized water (DI water) for precipitation,
and subsequently, the Zn precursor solution and ammonia water were simultaneously
dropped in DI water in which the Fe precursor solution was precipitated for precipitation.
<Comparative Example 2>
[0069] The pH was adjusted to 9 by dropping a precursor solution in which 47.667 g of FeCl
3·6H
2O as a Fe precursor and 2.019 g of ZnCl
3 as a Zn precursor were dissolved in 835.5 g of deionized water (DI water) and 9 wt%
of ammonia water in 8,500 g of deionized water (DI water) at 15°C using a circulator,
thereby synthesizing a catalyst.
[0070] A formed catalyst compound was subjected to a filtering process, and then dried in
an oven at 90°C, and a zinc ferrite catalyst was obtained by performing firing (calcination)
at an air atmosphere (1 L/min). For the firing, the temperature was increased at 80°C
and 1°C/min, and was maintained at 650°C for 6 hours.
<Comparative Example 3>
[0071] The pH was adjusted to 7.5 by simultaneously dropping a precursor solution in which
1,132.219 g of FeCl
3·6H
2O as a Fe precursor and 288.456 g of ZnCl
3 as a Zn precursor were dissolved in 2,000g of deionized water (DI water) and 9 wt%
of ammonia water in 2,000g of DI water at 15°C using a circulator, thereby synthesizing
a catalyst.
[0072] A formed catalyst compound was subjected to a filtering process, and then dried in
an oven at 90°C, and a zinc ferrite catalyst was obtained by performing firing (calcination)
at an air atmosphere (1 L/min). For the firing, the temperature was increased at 80°C
and 1°C/min, and was maintained at 650°C for 6 hours.
<Comparative Example 4>
[0073] A zinc ferrite catalyst was synthesized in the same manner as in Comparative Example
3, except that in Comparative Example 3, the pH was adjusted to 8.0.
<Comparative Example 5>
[0074] A zinc ferrite catalyst was synthesized in the same manner as in Comparative Example
3, except that in Comparative Example 3, the pH was adjusted to 8.5.
[0075] The results of measuring the intensity of the zinc ferrite catalysts produced according
to Example 1 and Comparative Examples 1 and 2 are illustrated in FIG. 3.
[0076] The results of measuring the change in temperature over time of the zinc ferrite
catalysts produced according to Example 2 and Comparative Examples 3 to 5 are illustrated
in FIG. 4.
[0077] The results of measuring the intensity of the zinc ferrite catalysts produced according
to Example 2 and Comparative Examples 3 to 5 are illustrated in FIG. 5.
[0078] According to FIG. 3, it can be seen that in the case of the zinc ferrite catalyst
in Comparative Example 2 synthesized by simultaneously coprecipitating the Zn precursor
and the Fe precursor, the α-Fe
2O
3 phase is observed.
[0079] Further, it can be confirmed that in the case of the zinc ferrite catalyst in Comparative
Example 1 synthesized by first introducing the Fe precursor, and subsequently precipitating
the Zn precursor, the α-Fe
2O
3 phase is detected more than in the case of the zinc ferrite catalyst in Comparative
Example 2 produced according to the related art.
[0080] Meanwhile, according to FIG. 3, it can be confirmed that in the case of the zinc
ferrite catalyst in Example 1 synthesized by first introducing the Zn precursor, and
subsequently precipitating the Fe precursor, the α-Fe
2O
3 phase is not observed.
[0081] According to FIG. 4, it can be confirmed that when the temperature of the coprecipitation
bath is adjusted to 15°C, the temperature of the coprecipitation solution exhibits
a temperature of 17°C in the early stage, and when the coprecipitation begins, the
temperature of the precipitation solution tends to be slowly increased up to 24°C
by neutralization heat.
[0082] In the case of Example 2, at the moment when the coprecipitation begins, the temperature
reaches 24°C, and then the temperature is decreased, so that the reaction heat is
easily controlled.
[0083] According to FIG. 5, it can be confirmed that in the case of a concentrated catalyst,
the zinc ferrite catalysts in Comparative Examples 3 to 5 synthesized by simultaneously
coprecipitating the Zn precursor and the Fe precursor exhibit the lowest α-Fe
2O
3 phase in Comparative Example 3 where the pH is 7.5, and a level of 2.47 is observed
as a result of EDS.
[0084] Meanwhile, according to FIG. 5, it can be confirmed that the zinc ferrite catalyst
in Example 2 synthesized by first introducing the Zn precursor, and subsequently precipitating
the Fe precursor exhibits a lower α-Fe
2O
3 phase than in Comparative Example 3, and a level of 2.33 is observed as a result
of EDS.
[0085] Consequently, according to Examples 1 and 2 and Comparative Examples 1 to 5, it can
be seen that as the zinc ferrite catalysts are concentrated, the α-Fe
2O
3 phase is increased, and in this case, as in Example 2, it can be confirmed that the
precipitation method of first introducing the Zn precursor is helpful in increasing
the activity of the catalyst by adjusting the crystal structure and α-Fe
2O
3 phase of the catalyst.
<Experimental Example 1>
[0086] Under the conditions of 400°C, GHSV = 250 h
-1, OBR = 1, SBR = 5, and NBR = 4, 1,3-butadiene was produced from the oxidative dehydrogenation
reaction by using the zinc ferrite catalyst produced in Example 1.
<Experimental Example 2>
[0087] 1,3-butadiene was produced in the same manner as in Experimental Example 1, except
that in Experimental Example 1, the temperature was 440°C.
<Comparative Example 6>
[0088] Under the conditions of 400°C, GHSV = 250 h
-1, OBR = 1, SBR = 5, and NBR = 4, 1,3-butadiene was produced from the oxidative dehydrogenation
reaction by using the zinc ferrite catalyst produced in Comparative Example 1.
<Comparative Example 7>
[0089] 1,3-butadiene was produced in the same manner as in Comparative Example 6, except
that in Comparative Example 6, the temperature was 440°C.
<Comparative Example 8>
[0090] Under the conditions of 400°C, GHSV = 250 h
-1, OBR = 1, SBR = 5, and NBR = 4, 1,3-butadiene was produced from the oxidative dehydrogenation
reaction by using the zinc ferrite catalyst produced in Comparative Example 2.
<Comparative Example 9>
[0091] 1,3-butadiene was produced in the same manner as in Comparative Example 8, except
that in Comparative Example 8, the temperature was 440°C.
(OBR = Oxygen/total 2-butene ratio
SBR = Steam/total 2-butene ratio
NBR = Nitrogen/total 2-butene ratio)
[0092] As a result of analyzing Fe/Zn
a by EDS in Experimental Examples 1 and 2 and Comparative Examples 6 to 9, the results
of calculating the conversion rate of butene and the selectivity of butadiene by using
GC devices are shown in the following Table 1.
[Table 1]
| Classification |
Precursor introduction order |
Fe/Zna (mol ratio) |
Reaction temperature |
Butene conversion rate (%) |
Butadiene selectivity (%) |
| Experimental Example 1 |
1.Zn, 2.Fe (Example 1) |
2.39 |
400°C |
79.1 |
87.9 |
| Experimental Example 2 |
440°C |
72.5 |
86.8 |
| Comparative Example 6 |
1.Fe, 2.Zn (Comparative Example 1) |
2.73 |
400°C |
66.6 |
82.5 |
| Comparative Example 7 |
440°C |
70.4 |
83.8 |
| Comparative Example 8 |
Zn+Fe (Comparative Example 2) |
2.66 |
400°C |
74.7 |
86.7 |
| Comparative Example 9 |
440°C |
70.4 |
86.1 |
| (Fe/Zna: Estimated from EDS) |
[0093] According to Table 1, it could be confirmed that in the case of the zinc ferrite
catalyst in Example 1 synthesized by first introducing the Zn precursor than the Fe
precursor as in Experimental Examples 1 and 2, the Fe/Zn
a ratio was at a level of 2.39, the zinc ferrite catalyst was synthesized at a level
lower than 2.66 which is a Fe/Zn
a ratio of the zinc ferrite catalysts in Comparative Examples 8 and 9 synthesized by
the related art.
[0094] When Experimental Examples 1 and 2 are compared with Comparative Examples 6 and 7,
it could be confirmed that in the case of Experimental Examples 1 and 2 in which the
catalyst was synthesized by first introducing the Zn precursor, and subsequently precipitating
the Fe precursor, under the reaction conditions of 400°C and 440°C, both the butene
conversion rate and the butadiene selectivity are better than those in the case of
Comparative Examples 6 and 7 in which the catalyst was synthesized by first introducing
the Fe precursor, and subsequently precipitating the Zn precursor.
[0095] Further, when Experimental Examples 1 and 2 are compared with Comparative Examples
8 and 9, it could be confirmed that in the case of Experimental Examples 1 and 2 in
which the catalyst was synthesized by first introducing the Zn precursor, and subsequently
precipitating the Fe precursor, under the reaction conditions of 400°C and 440°C,
both the butene conversion rate and the butadiene selectivity are better than those
in the case of Comparative Examples 8 and 9 in which the catalyst was synthesized
by simultaneously coprecipitating the Zn precursor and the Fe precursor.
[0096] As confirmed in FIG. 3, it could be confirmed that this is because the α-Fe
2O
3 phase was not observed in the case of the zinc ferrite catalyst in Example 1 synthesized
by first introducing the Zn precursor, and subsequently precipitating the Fe precursor.
[0097] The α-Fe
2O
3 phase exhibits low butadiene selectivity in the oxidative dehydrogenation reaction
of butene, and in the case of the zinc ferrite catalyst in Comparative Example 2 synthesized
by simultaneously precipitating the Zn precursor and the Fe precursor and the zinc
ferrite catalyst in Comparative Example 1 synthesized by first introducing the Fe
precursor, and subsequently precipitating the Zn precursor, the α-Fe
2O
3 phase was observed, so that for this reason, the conversion rate of butene and the
selectivity of butadiene have low values as compared to the zinc ferrite catalyst
in Example 1 according to the present invention, meaning that the activity of the
catalyst was decreased.
[0098] Consequently, it could be confirmed that in the process of producing a zinc ferrite
catalyst through a coprecipitation method, the precipitation method of first introducing
the Zn precursor and then introducing the Fe precursor was helpful in increasing the
crystal structure and activity of the catalyst.
<Experimental Example 3>
[0099] For the zinc ferrite catalyst produced in Example 2, the results of measuring the
weight and Fe/Zn
a ratio of ZnFe
2O
4 and α-Fe
2O
3 by using an X-ray diffraction (XRD) analysis method are shown in the following Table
2.
<Comparative Examples 10 to 12>
[0100] For each of the zinc ferrite catalysts produced in Comparative Examples 3 to 5, the
results of measuring the weight and Fe/Zn
a ratio of ZnFe
2O
4 and α-Fe
2O
3 by using an X-ray diffraction (XRD) analysis method are shown in the following Table
2.
[Table 2]
| Classification |
Precursor introduction order |
XRD |
Fe/Zna |
| ZnFe2O4 (wt%) |
α-Fe2O3 (wt%) |
| Experimental Example 3 |
1.Zn, 2.Fe (Example 2) |
95.72 |
4.28 |
2.33 |
| Comparative Example 10 |
Zn+Fe (Comparative Example 3) |
93.62 |
6.38 |
2.47 |
| Comparative Example 11 |
Zn+Fe (Comparative Example 4) |
86.25 |
13.75 |
2.95 |
| Comparative Example 12 |
Zn+Fe (Comparative Example 5) |
61.58 |
38.42 |
4.55 |
[0101] According to Table 2, it could be confirmed that in the case of the zinc ferrite
catalyst in Example 2 synthesized by first introducing the Zn precursor and then introducing
the Fe precursor as in Experimental Example 3, the Fe/Zn
a ratio was at a level of 2.33, and the zinc ferrite catalyst was synthesized at a
level lower than 2.47 which is a Fe/Zn
a ratio of the zinc ferrite catalyst in Comparative Example 10.
[0102] In addition, in the case of the weight of ZnFe
2O
4 and α-Fe
2O
3 measured according to the XRD analysis method, it could be confirmed that in Experimental
Example 3, the weight of α-Fe
2O
3 was 4.28 wt%, which was the lowest level detected.
[0103] Consequently, in the process of producing the zinc ferrite catalyst through the coprecipitation
method, it could be confirmed that the precipitation method of first introducing the
Zn precursor, and then introducing the Fe precursor was helpful in controlling the
α-Fe
2O
3 phase when synthesizing a concentrated catalyst.
[0104] Although the preferred exemplary embodiments of the present invention have been described
above, the present invention is not limited thereto, and various modifications can
be made and carried out within the scope of the claims and the detailed description
of the invention, and also fall within the scope of the invention.